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642 results for “cucumber”
Figure 20 in The paracaudinid sea cucumbers of Australia and New Zealand (Echinodermata: Holothuroidea: Molpadida: Caudinidae)
Figure 20. SEM images of ossicles from the mid-body wall of a 35 mm long specimen of a species of Paracaudina Heding 1932 from the Chatham Rise (NIWA 70957).
Figure 15 in The paracaudinid sea cucumbers of Australia and New Zealand (Echinodermata: Holothuroidea: Molpadida: Caudinidae)
Figure 15. SEM images of ossicles from the mid-body wall of a specimen of Paracaudina luticola Hickman, 1962 from Sandy Point, Waratah Bay, Victoria (NMV F76072).
Figure 12. a in The paracaudinid sea cucumbers of Australia and New Zealand (Echinodermata: Holothuroidea: Molpadida: Caudinidae)
Figure 12. a, Calcareous ring of a specimen of Paracaudina cuprea O'Loughlin and Barmos sp. nov. from Portland Bay, Victoria (NMV F174890) (insert with drawing of two radial plates and one interradial plate typical of Paracaudina species); b, SEM images of ossicles from a specimen of Paracaudina chilensis obesacauda (H. L. Clark, 1908), judged here to be typical of Paracaudina chilensis (Müller, 1850) (copied from Pawson et al. 2001).
Figure 10 in The paracaudinid sea cucumbers of Australia and New Zealand (Echinodermata: Holothuroidea: Molpadida: Caudinidae)
Figure 10. SEM images of ossicles from the mid-body wall of a specimen of Paracaudina coriacea (Hutton, 1872) from Cook Strait, New Zealand (NIWA 70954).
Figure 11 in The paracaudinid sea cucumbers of Australia and New Zealand (Echinodermata: Holothuroidea: Molpadida: Caudinidae)
Figure 11. Photos of preserved specimens of species of Paracaudina (a, c–f): a, P. cuprea O'Loughlin and Barmos sp. nov. holotype (NMV F157396); b, photo of live specimens of P. cuprea including holotype (photo by P. Vafiadis); c, P. keablei O'Loughlin and Barmos sp. nov. holotype (AM J13579); d, P. luticola Hickman, 1962 (NMV F169342); e, P. tetrapora (H. L. Clark, 1914) (from Merricks, Westernport Bay, Victoria; NMV F76565); f, P. tetrapora (H. L. Clark, 1914) (from off Glenelg, South Australia; AM J24918).
Figure 4 in The Discovery Expedition sea cucumbers (Echinodermata: Holothuroidea)
Figure 4. Sea cucumber specialists who contributed to the identifications of the specimen lots that are the subject of this report. a, Elizabeth Deichmann (1896–1975; photo provided by David Pawson in USNM); b, Cynthia (Gust) Ahearn (1952–2008); c, Melanie Mackenzie (Museum Victoria); d, Emily Whitfield (volunteer in Museum Victoria).
Figure 5. a & b in The Discovery Expedition sea cucumbers (Echinodermata: Holothuroidea)
Figure 5. a & b, photos of preserved holotype of Cucusquama wesafrica O'Loughlin gen. & sp. nov. from Angola (oral end left; axial length 13 mm; NHMUK 2016.148); c, photo into mouth cavity of a preserved paratype from Gambon (French Congo) (arrow pointing to one black tentacle; NHMUK 2016.149).
Figure 1. Ships from which the early Discovery Expedition was conducted. a in The Discovery Expedition sea cucumbers (Echinodermata: Holothuroidea)
Figure 1. Ships from which the early Discovery Expedition was conducted. a, Scott's RRS Discovery I (collected from 25 Sep 1925 to 1927); b, RRS Discovery II (collected for five voyages from 1929 to 1935, and a sixth voyage in 1950).
Figure 6 in The Discovery Expedition sea cucumbers (Echinodermata: Holothuroidea)
Figure 6. Photos of eroding ossicles from the mid-body wall of Cucusquama wesafrica O'Loughlin gen. & sp. nov. a, large single-layered perforated plates (scales) from the holotype (up to 600 µm long; NHMUK 2016.148); b, body wall and tube foot small perforated plates from a paratype (up to 168 µm long; NHMUK 2016.150).
Figure 3 in The Discovery Expedition sea cucumbers (Echinodermata: Holothuroidea)
Figure 3. Authors who published the first new sea cucumber genera and species from the Discovery Expedition in their monograph on the Phyllophoridae in 1954. a, Danish holothuroid specialist Svend Geisler Heding (1902–1949; photo provided by Tom Schioette in ZMUC); b, German holothuroid specialist Albert Panning (1894–1978; photo provided by David Pawson in USNM).
Evolução das Métricas CK no Projeto Cucumber-JVM
<p>Este conjunto de dados contém a análise das métricas CK (WMC, DIT, NOC, CBO, LCOM, RFC e LOC) do projeto open source Cucumber-JVM. Inclui CSVs com dados coletados e gráficos da evolução das métricas ao longo de 25 releases. O estudo visa avaliar a qualidade do software e identificar tendências nas métricas ao longo do tempo.</p>
Data from: Unravelling cucumber resistance to several viruses via genome-wide association studies highlighted resistance hotspots and new QTLs
<p>The mapping and introduction of sustainable resistance to viruses in crops is a major challenge in modern breeding, especially regarding vegetables. We hence assembled a panel of cucumber elite lines and landraces from different horticultural groups for testing with six virus species. We mapped 18 quantitative trait loci (QTL) with a multiloci genome wide association studies (GWAS), some of which have already been described in the literature. We detected two resistance hotspots, one on chromosome 5 for resistance to the cucumber mosaic virus (CMV), cucumber vein yellowing virus (CVYV), cucumber green mottle mosaic virus (CGMMV) and watermelon mosaic virus (WMV), colocalizing with the RDR1 gene, and another on chromosome 6 for resistance to the zucchini yellowing mosaic virus (ZYMV) and papaya ringspot virus (PRSV) close to the putative VPS4 gene location. We observed clear structuring of resistance among horticultural groups due to plant virus coevolution and modern breeding which have impacted linkage disequilibrium (LD) in resistance QTLs. The inclusion of genetic structure in GWAS models enhanced the GWAS accuracy in this study. The dissection of resistance hotspots by local LD and haplotype construction helped gain insight into the panel’s resistance introduction history. ZYMV and CMV resistance were both introduced from different donors in the panel, resulting in multiple resistant haplotypes at same locus for ZYMV, and in multiple resistant QTLs for CMV.</p>
Figure 5 in Evaluation of geostatistical method and hybrid Artificial Neural Network with imperialist competitive algorithm for predicting distribution pattern of Tetranychus urticae (Acari: Tetranychidae) in cucumber field of Behbahan, Iran
Figure 5. Moving colonies to imperialist in culture and language axes (AtashpazGargari et al. 2008).
Figure 2 in Evaluation of geostatistical method and hybrid Artificial Neural Network with imperialist competitive algorithm for predicting distribution pattern of Tetranychus urticae (Acari: Tetranychidae) in cucumber field of Behbahan, Iran
Figure 2. Generalized semivariogram showing the range of spatial dependence, nugget effect (C0) variability associated with spatial dependence (C), and sill (C + C0).
Figure 5 in Hybrid neural network with genetic algorithms for predicting distribution pattern of Tetranychus urticae (Acari: Tetranychidae) in cucumbers field of Ramhormoz, Iran
Figure 5. Tetranychus urticae distribution maps in actual (b, d and f) and classified conditions by MLPNN (c, e and a). The maps of a, c, e and b, d, f have been drawn according to economic threshold of 4, 8 and 12, respectively.
Figure 3. Ossicles from the holotype and a in Sea cucumbers of the Kerguelen Plateau, with descriptions of new genus and species (Echinodermata: Holothuroidea)
Figure 3. Ossicles from the holotype and a paratype of Calcamariina hibberdi O'Loughlin & Skarbnik-López sp. nov. (holotype NMV F165750, paratype TMAG H3542). a, SEM images of variably knobbed and thickened plate fragments from the ventral body wall and papillae, with some marginal spines (from holotype); b, microscope photos of large body wall plate with smooth perforated base and knobbed projecting distal end that has lost its distal spinous edge (top, from holotype; scale bar refers to this ossicle only), and two tube foot/papilla support plates with projecting outer marginal spinous edge (bottom, from paratype; up to about 140 µm long; scale bar does not refer to these ossicles), and; c, SEM images of small perforated, concave plates (top), curved plates, rod and rod-plates from a tentacle (from holotype).
Figure 15 in Sea cucumbers of the Kerguelen Plateau, with descriptions of new genus and species (Echinodermata: Holothuroidea)
Figure 15. Microscope photos of ossicles and phosphatic bodies from specimens of Molpadia magdae O'Loughlin (in O'Loughlin et al. 2013) and Molpadia violacea Studer, 1876. a–d, Molpadia magdae. a, mid-body irregular table discs, ossicles beginning to phosphatize with small phosphatic bodies present (from NMV F197215); b, caudal fusiform rods, some only with spires (from NMV F197215); c, mid-body irregular table discs and fusiform rod, ossicles beginning to phosphatize (from NMV F68677); d, caudal fusiform rods, one with and one lacking spire (from NMV F68677); e–f, Molpadia violacea. e, mid-body phosphatizing table disc (disc 64 µm across; from NMV F165737); f, mid-body phosphatic bodies (from NMV F169293).
Figure 7. Echinocucumis ampla O in Sea cucumbers of the Kerguelen Plateau, with descriptions of new genus and species (Echinodermata: Holothuroidea)
Figure 7. Echinocucumis ampla O'Loughlin & Skarbnik-López sp. nov. holotype photos (NMV F165735). a, left lateral view of holotype with oral end left (insert with drawing of radial (right) and inter-radial plates of the calcareous ring); b, imbricating spined plates of the body wall.
Figure 11. Paracaudina championi O in Sea cucumbers of the Kerguelen Plateau, with descriptions of new genus and species (Echinodermata: Holothuroidea)
Figure 11. Paracaudina championi O'Loughlin & Skarbnik-López sp. nov. holotype photo of lateral view (oral end left) (insert with drawing of radial (left) and inter-radial plates of the calcareous ring) (NMV F165736).
Figure 2. Calcamariina hibberdi O in Sea cucumbers of the Kerguelen Plateau, with descriptions of new genus and species (Echinodermata: Holothuroidea)
Figure 2. Calcamariina hibberdi O'Loughlin & Skarbnik-López sp. nov. holotype photos (NMV F165750). a, left lateral view of holotype with oral end left (insert with drawing of radial (left) and inter-radial plates of the calcareous ring); b, dorsal view of holotype with oral end left; c, ventral view of holotype with oral end left; d, close-up view of some ventral tube feet surmounting calcareous papillae.
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.